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pH对固着液滴免疫分析中捕获效率和沉积模式的影响:XDLVO分析

pH effects on capture efficiency and deposition patterns in sessile droplet immunoassays: An XDLVO analysis.

作者信息

Rathaur Vidisha Singh, Gokhale Nachiket Aashish, Panda Siddhartha

出版信息

Biomicrofluidics. 2024 Sep 11;18(5):054103. doi: 10.1063/5.0219301. eCollection 2024 Sep.

Abstract

Immunosensors are crucial for various applications, with capture efficiency and detection time as key performance parameters. Sessile droplets on functionalized substrates have demonstrated potential as micro-reactors for antibody-antigen binding, reducing detection time and analyte volume due to the presence of convective currents. Tuning the surface charges by adjusting buffer pH can modulate antigen capture efficiency. While the impact of pH has been studied on antibody-antigen binding in flow and non-flow systems, the use of sessile droplets and the specific impact of buffer pH on the capture efficiency of surface-functionalized antibodies remains understudied. Understanding how pH affects capture and deposition patterns is vital for optimizing immunosensor design. Additionally, the mechanisms governing internal flow within the droplet and dominant driving forces require further investigation. We investigated the effect of varying buffer pH on prostate-specific antigen (PSA) capture by anti-PSA functionalized polydimethylsiloxane substrates. Capture efficiency was measured using the Brown-Anson model applied to cyclic voltammetry, validated with electrochemical impedance spectroscopy. pH significantly influenced PSA capture by surface-immobilized anti-PSA IgG. The extended Derjaguin-Landau-Verwey-Overbeek theory explained the interplay between pH and internal flow. Micro-particle image velocimetry (PIV) confirmed internal flow, primarily driven by Marangoni flow from solute concentration gradients. Controlling buffer pH in biosensors offers higher capture efficiency and desired deposition patterns. These insights advance immunosensor design and hold potential for biomedical and diagnostic applications.

摘要

免疫传感器对于各种应用至关重要,捕获效率和检测时间是关键性能参数。功能化基板上的静态液滴已显示出作为抗体 - 抗原结合微反应器的潜力,由于对流电流的存在,减少了检测时间和分析物体积。通过调节缓冲液pH值来调整表面电荷可以调节抗原捕获效率。虽然已经研究了pH值对流动和非流动系统中抗体 - 抗原结合的影响,但静态液滴的使用以及缓冲液pH值对表面功能化抗体捕获效率的具体影响仍未得到充分研究。了解pH值如何影响捕获和沉积模式对于优化免疫传感器设计至关重要。此外,控制液滴内部流动的机制和主要驱动力需要进一步研究。我们研究了不同缓冲液pH值对抗前列腺特异性抗原(PSA)功能化聚二甲基硅氧烷基板捕获PSA的影响。使用应用于循环伏安法的Brown - Anson模型测量捕获效率,并用电化学阻抗谱进行验证。pH值显著影响表面固定的抗PSA IgG对PSA的捕获。扩展的Derjaguin - Landau - Verwey - Overbeek理论解释了pH值与内部流动之间的相互作用。微粒图像测速技术(PIV)证实了内部流动,主要由溶质浓度梯度引起的马兰戈尼流驱动。在生物传感器中控制缓冲液pH值可提供更高的捕获效率和所需的沉积模式。这些见解推动了免疫传感器设计的发展,并在生物医学和诊断应用中具有潜力。

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